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Simulação Estocástica de Eventos Discretos×Modelagem Baseada em Agentes (ABM)×
ÁreaSimulaçãoSimulação
FamíliaProcess / pipelineProcess / pipeline
Ano de origem1960s–1970s1970s–1990s (formalized as a field)
Autor originalBanks, Carson, Nelson, Nicol; Law, A. M.Thomas Schelling and Robert Axelrod (foundational contributions, 1970s–1990s)
TipoStochastic simulation modelComputational simulation method
Fonte seminalBanks, J., Carson, J. S., Nelson, B. L., & Nicol, D. M. (2010). Discrete-Event System Simulation (5th ed.). Prentice Hall. ISBN: 9780136062127Axelrod, R. (1997). The Complexity of Cooperation: Agent-Based Models of Competition and Collaboration. Princeton University Press. DOI ↗
Outros nomesStochastic DES, SDES, Probabilistic DES, Monte Carlo DESABM, Ajan Tabanlı Modelleme (ABM), multi-agent simulation, individual-based modeling
Relacionados65
ResumoStochastic Discrete-Event Simulation (Stochastic DES) models complex systems by advancing simulated time from one discrete event to the next, drawing event durations and inter-arrival times from fitted probability distributions. It is the standard technique for analyzing queues, manufacturing lines, healthcare pathways, and logistics networks under uncertainty, producing output statistics with confidence intervals.Agent-based modeling (ABM) is a computational simulation method, formalized through the work of Thomas Schelling and Robert Axelrod in the 1970s–1990s, that simulates the behavior of complex systems by specifying and running autonomous agents — individuals, firms, cells, or any bounded entity — whose local interactions with each other and with their environment collectively produce global, system-level patterns that could not be predicted from any single agent's rules alone.
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ScholarGateComparar métodos: Stochastic Discrete-Event Simulation · Agent-Based Modeling. Recuperado em 2026-06-17 de https://scholargate.app/pt/compare